A series of photonic crystal structures are optimized for a photon enhanced thermionic emitter. With realistic parameter values to describe a p-type GaAs device we find an efficiency above 10%. The light-trapping structures increases the performance by 2% over an optimal bilayer anti-reflective coating. We find a device efficiency very close to the case of a Lambertian absorber, but below its maximum performance. To prevent an efficiency below 10% the vacuum gap must be dimensioned according to the concentration factor of the solar irradiance
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Electrical Engineering and Comp...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Electrical Engineering and Comp...
We show that the radiation-hardness of space solar cells can be significantly improved by employing ...
This work was supported by the European Space Agency contract No 4000112049/14/NL/MV under the GSP/A...
A novel concept for solar electricity generation named photon-enhanced thermionic emission (PETE) wa...
Photon-enhanced thermionic emission (PETE) converts sunlight to electricity with the combined photon...
Photovoltaic energy conversion at high temperatures can be realized with photon-enhanced-thermionic-...
We report the design and optimization of photonic crystal (PhC) structures within a GaAs or InAs abs...
Photon Enhanced Thermionic Emission (PETE) is a novel concept in solar energy<br /> conversion, whic...
Photon-enhanced thermionic emission (PETE) solar cells are photovoltaic devices designed for high te...
AbstractConversion of sunlight by photon-enhanced thermionic emission (PETE) combines a photonic pro...
Póster presentado en la 28th European PV Solar Energy Conference and Exhibition (EU PVSEC 2013), cel...
We propose a new figure of merit to assess the performance of light trapping nanostructures for sola...
A semiconductor thermionic device, which utilises thermally excited electrons, is considered as an a...
In thermophotovoltaics (TPV) an emitter is heated up to a high temperature and emits infrared light....
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Electrical Engineering and Comp...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Electrical Engineering and Comp...
We show that the radiation-hardness of space solar cells can be significantly improved by employing ...
This work was supported by the European Space Agency contract No 4000112049/14/NL/MV under the GSP/A...
A novel concept for solar electricity generation named photon-enhanced thermionic emission (PETE) wa...
Photon-enhanced thermionic emission (PETE) converts sunlight to electricity with the combined photon...
Photovoltaic energy conversion at high temperatures can be realized with photon-enhanced-thermionic-...
We report the design and optimization of photonic crystal (PhC) structures within a GaAs or InAs abs...
Photon Enhanced Thermionic Emission (PETE) is a novel concept in solar energy<br /> conversion, whic...
Photon-enhanced thermionic emission (PETE) solar cells are photovoltaic devices designed for high te...
AbstractConversion of sunlight by photon-enhanced thermionic emission (PETE) combines a photonic pro...
Póster presentado en la 28th European PV Solar Energy Conference and Exhibition (EU PVSEC 2013), cel...
We propose a new figure of merit to assess the performance of light trapping nanostructures for sola...
A semiconductor thermionic device, which utilises thermally excited electrons, is considered as an a...
In thermophotovoltaics (TPV) an emitter is heated up to a high temperature and emits infrared light....
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Electrical Engineering and Comp...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Electrical Engineering and Comp...
We show that the radiation-hardness of space solar cells can be significantly improved by employing ...